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Currently, I am using this snippet:

$('.element-block').click(function(){
    $(this).siblings(".key-element").toggle();

    $('.background-area').removeClass("active_bg");
    $(this).parent('.background-area').addClass("active_bg");
});

I have list of DIV elements. In this block, when I click on the .element-block, the jQuery function toggle() displays needed area, if I click again, toggle hide it and also I am adding the background color to this area.

This is working well, for example: I click the A .block-element - data are appeared + background color changed. Then I click the B .block-element - data are appeared + background color changed. Cool.

But if I click on the A .block-element - data are appeared + background color changed and then if I click again the A .block-element - data will be hidden, but the background color is not changed.

How to fix this issue?

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1  
Can you make a Fiddle? –  Mooseman Feb 21 '13 at 13:10
    
can u give the css and html?? –  jubair Feb 21 '13 at 13:14
    
You are adding the "active_bg" class to one element, but appear to be removing it from a different element. Can you post some example html to illustrate the structure? –  Raad Feb 21 '13 at 13:17
    
Guys, thank you for your afford and the willingness to help me, Felix's solution did the work. –  user984621 Feb 21 '13 at 13:22
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1 Answer

up vote 1 down vote accepted

That's because you are always adding the class. You can check beforehand whether you want to remove it only or add it as well:

var $active_bg = $('.background-area.active_bg').removeClass("active_bg");
var $bg = $(this).parent('.background-area');

// Only add the class if the current background didn't have the class
if ($bg[0] !== $active_bg[0]) {
    $bg.addClass("active_bg");
}

The above code only allows one .background-area element to be "active". If there can be multiple, you can simplify your code to:

$(this).parent('.background-area').toggleClass("active_bg");
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Thanks Felix, this helped me to solved this issue. Btw., I didn't know that is possible to use as a variable name in JS the $ char. –  user984621 Feb 21 '13 at 13:23
    
What do you think $ is in $()? ;) It's variable consisting of one character, $, which has a function as value. –  Felix Kling Feb 21 '13 at 13:23
    
I meant this: var $bg instead of var bg. –  user984621 Feb 21 '13 at 13:25
    
I know, but it's the same. Somewhere, jQuery is doing var $ = jQuery;. –  Felix Kling Feb 21 '13 at 13:25
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